Single Plasmon-Active Optical Fiber Probe for Instantaneous Chiral Detection.

DOPA chiral detection fiber-optic probe instantaneous recognition racemic mixture surface plasmon resonance

Journal

ACS sensors
ISSN: 2379-3694
Titre abrégé: ACS Sens
Pays: United States
ID NLM: 101669031

Informations de publication

Date de publication:
24 01 2020
Historique:
pubmed: 13 12 2019
medline: 14 1 2021
entrez: 13 12 2019
Statut: ppublish

Résumé

The chiral recognition of organic compounds is of vital importance in the field of pharmacology and medicine. Unfortunately, the common analytical routes used in this field are significantly restricted by time spent and equipment demands. In this work, we propose an unprecedented alternative, aimed at enantiomer discrimination and estimation of their concentrations in an uncomplicated and instantaneous manner. The proposed approach is based on the creation of an optical fiber probe with two pronounced plasmonic bands attributed to gold and silver. The gold or silver surfaces were grafted with moieties, able to enunciating entrap chiral amines from solution, resulting in a wavelength shift corresponding to each plasmonic metal. As a model compound of chiral amine, we chose the DOPA, also taking in mind its high medical relevancy. For chiral detection, the optical fiber probe was simply immersed in an analytical solution of DOPA, and the selective shift of gold or silver plasmon bands was observed in the reflected light depending on DOPA chirality. The observed shifts depend on the concentration of DOPA enantiomers. In the case of a racemic mixture, the shifts of both plasmonic bands emerge, making possible the simultaneous determination of enantiomer concentrations and their ratio. The analytical cycle takes several minutes and requires very simple laboratory equipment.

Identifiants

pubmed: 31826609
doi: 10.1021/acssensors.9b01328
doi:

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

50-56

Auteurs

Elena Miliutina (E)

Department of Solid State Engineering , University of Chemistry and Technology , 16628 Prague , Czech Republic.
Research School of Chemistry and Applied Biomedical Sciences , Tomsk Polytechnic University , 634050 Tomsk , Russian Federation.

Olga Guselnikova (O)

Department of Solid State Engineering , University of Chemistry and Technology , 16628 Prague , Czech Republic.
Research School of Chemistry and Applied Biomedical Sciences , Tomsk Polytechnic University , 634050 Tomsk , Russian Federation.

Anna Kushnarenko (A)

Department of Solid State Engineering , University of Chemistry and Technology , 16628 Prague , Czech Republic.

Polina Bainova (P)

Department of Solid State Engineering , University of Chemistry and Technology , 16628 Prague , Czech Republic.

Pavel Postnikov (P)

Department of Solid State Engineering , University of Chemistry and Technology , 16628 Prague , Czech Republic.
Research School of Chemistry and Applied Biomedical Sciences , Tomsk Polytechnic University , 634050 Tomsk , Russian Federation.

Vladimír Hnatowicz (V)

Institute of Nuclear Physics , Czech Academy of Sciences , 250 68 Rez near Prague , Czech Republic.

Vaclav Svorcik (V)

Department of Solid State Engineering , University of Chemistry and Technology , 16628 Prague , Czech Republic.

Oleksiy Lyutakov (O)

Department of Solid State Engineering , University of Chemistry and Technology , 16628 Prague , Czech Republic.
Research School of Chemistry and Applied Biomedical Sciences , Tomsk Polytechnic University , 634050 Tomsk , Russian Federation.

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Classifications MeSH